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Modelling and Verification of Nonlinear Electromechanical Coupling in Micro-Scale Kinetic Electromagnetic Energy Harvesters

机译:微尺寸动能电磁能量收割机中非线性机电耦合的建模与验证

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Electromechanical coupling in kinetic energy harvesters is the key aspect of these devices that ensures an effective energy conversion process. When modelling and designing such devices, it is necessary to incorporate electromechanical coupling correctly since it will determine the amount of energy that will be converted during its operation. As the engineering community prefers compact (lumped) models of such devices, the conventional choice of the lumped model for the electromagnetic type of electromechanical coupling is linear damping, proportional to the velocity of the mechanical resonator in a harvester, leading to the idea of maximizing the velocity in order to improve the energy conversion process. In this paper, we show that electromechanical coupling in electromagnetic kinetic energy harvesters is inherently nonlinear and requires a number of aspects to be taken into account if one wants to optimize a device. We show that the proposed model, which is based on first principles of electromagnetics, can be reduced to a nonlinear lumped model that is particularly convenient for analysis and design. The modelling approach and the resulting lumped model are verified using two MEMS electromagnetic harvesters operating over a range of frequencies from 300 to 500 Hz (Harvester A) and from 50 to 70 Hz (Harvester B) generating from mV (Harvester A) to few volts (Harvester B) of RMS voltage, respectively. The proposed modelling approach is not limited to energy harvesters but can also be applied to magnetic sensors or other MEMS devices that utilise electromagnetic transduction.
机译:动能收割机中的机电耦合是这些装置的关键方面,可确保有效的能量转换过程。在建模和设计这些设备时,必须正确地结合机电耦合,因为它将确定在其操作期间将转换的能量量。由于工程界更喜欢这种装置的紧凑型(集成)模型,因此电磁耦合电磁耦合的集总模型是线性阻尼,与收割机中机械谐振器的速度成比例,导致最大化的想法速度,以改善能量转换过程。在本文中,我们表明,电磁动能收割机中的机电耦合本质上是非线性的,并且如果想要优化设备,则需要考虑许多方面。我们表明,基于电磁的第一个原理的所提出的模型可以减少到非线性集成模型,特别适用于分析和设计。使用两个MEMS电磁收割机验证建模方法和所得到的集总模型,该MEMS电磁收割机在从300至500Hz(Harvester A)的范围内,50至70 Hz(Harvester B)从MV(Harvester A)产生到几伏(Harvester B)分别为均方根电压。所提出的建模方法不限于能量收割机,而且还可以应用于利用电磁转导的磁传感器或其他MEMS装置。

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